Discharging device for forming aerated concrete plate reinforcing mesh

By designing a feeding device including a CNC machine tool and an automatic adjustment mechanism, the problem of position offset of the aerated concrete slab reinforced mesh during transportation is solved, automatic adjustment is achieved, and work efficiency and production efficiency are improved.

CN120191718AInactive Publication Date: 2025-06-24TIANJIN DONGXING MATERIA MEDICA TECH CO LTD
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Patent Information

Application Number
CN202510552234.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-29
Publication Date
2025-06-24
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing discharge device for forming reinforced mesh with aerated concrete slabs is prone to shifting the position of the reinforced mesh during transportation, resulting in manual finishing, which reduces work efficiency and affects production efficiency.

Method used

A discharge device including a CNC machine tool, a driving roller, a movable mechanism, a plate support mechanism, a balance detection mechanism, a clutch mechanism, a push mechanism and a self-locking mechanism are designed. The slider and push rod are driven to move through the chute rod, and the position of the steel mesh is automatically adjusted to prevent deviation.

Benefits of technology

It effectively prevents the positional deviation of the steel mesh during transportation, ensures the consistency of stacking during subsequent packaging, saves working time and improves work efficiency.

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Abstract

The invention relates to the technical field of aerated concrete production, in particular to a discharging device for aerated concrete plate reinforcing mesh forming, which comprises a numerical control machine tool, a driving roller is rotatably connected in the numerical control machine tool, movable mechanisms are rotatably connected in the numerical control machine tool, two movable mechanisms form a group, and a plurality of groups of movable mechanisms are arranged. When the chute rod rotates, the sliding rod at the lower end of the sliding block is driven to move, the sliding rod moves along the track in the chute rod, and when the sliding block moves, the push rod is driven to move in the direction of the aerated concrete plate reinforcing mesh, and the aerated concrete plate reinforcing mesh with the deviated position is pushed; the aerated concrete plate reinforcing mesh conveying device prevents the position of the aerated concrete plate reinforcing mesh from deviating in the conveying process, so that it can be guaranteed that the aerated concrete plate reinforcing mesh is stacked at the same position in the subsequent packaging process, the working time is saved, and meanwhile the working efficiency is improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of aerated concrete production, and specifically relates to a discharging device for forming a steel mesh for aerated concrete slabs. Background Art

[0002] Aerated concrete slabs have been widely used in the construction industry due to their excellent properties such as light weight, heat insulation, and sound insulation. In the production process of aerated concrete slabs, the steel mesh, as a reinforcing structure, plays a key role in improving the strength and load-bearing capacity of the slabs. The forming quality of the steel mesh directly affects the overall performance and service life of the aerated concrete slabs. Therefore, ensuring the accurate and efficient forming of the steel mesh is an important link in the production of aerated concrete slabs.

[0003] The existing patent (Publication No.: CN212953262U) discloses a discharging device for forming a steel mesh for aerated concrete slabs, which relates to the technical field of aerated concrete production. It includes a base, on which a feeding roller is horizontally rotatably arranged. A bracket is arranged on the base, and two receiving plates for receiving the steel mesh are horizontally arranged on the bracket. The length direction of the receiving plate is perpendicular to the length direction of the feeding roller, and the receiving plate is arranged on one side of the output end of the feeding roller. The above-mentioned discharging device for forming a steel mesh for aerated concrete slabs transports the steel mesh to the two receiving plates through the feeding roller, makes the topmost steel mesh on the receiving plate flush with the feeding roller through a driving member, repeats the above steps, and drives the two receiving plates to move away from each other through a driving device, so that the steel mesh detaches from the receiving plate and falls into the aggregate box, thus completing the blanking and sorting of the steel mesh, which is very convenient. However, during the transportation process, it is inevitable that the position of the steel mesh for aerated concrete slabs shifts on the transportation roller. At this time, manual sorting is required to ensure the next packaging, which not only reduces the work efficiency but also affects the production efficiency. Summary of the Invention

[0004] The purpose of the present invention is to provide a discharging device for forming a steel mesh for aerated concrete slabs to solve the problems raised in the above background art. To achieve the above purpose, the present invention provides the following technical solution: A discharging device for forming a steel mesh for aerated concrete slabs includes a numerical control machine tool. A driving roller is rotatably connected inside the numerical control machine tool. An activity mechanism is rotatably connected inside the numerical control machine tool. Two activity mechanisms are in a group, and multiple groups are provided. A plate support mechanism for movably supporting the aerated concrete slab is fixedly connected between the activity mechanisms. A balance detection mechanism for detecting the angle of the plate is fixedly connected inside the numerical control machine tool. A clutch mechanism is rotatably connected inside the numerical control machine tool. A pushing mechanism for pushing the plate is fixedly connected inside the inner side of the numerical control machine tool. A self-locking mechanism for controlling the pushing mechanism is arranged between the clutch mechanism and the pushing mechanism.

[0005] Preferably, the movable mechanism includes a main rotating shaft which is rotatably connected inside the numerical control machine tool and is controlled by the numerical control machine tool. A pulley is rotatably connected inside the numerical control machine tool, and a transmission belt is connected between the pulley and the main rotating shaft. A universal joint is fixedly connected to the side surface of the main rotating shaft, and a spline telescopic rod is fixedly connected to the side surface of the universal joint.

[0006] Preferably, the plate support mechanism includes a support plate which is fixed inside the numerical control machine tool. An annular rotating groove is rotatably connected to the upper end of the surface of the support plate. A rotating roller is rotatably connected inside the annular rotating groove. Both sides of the rotating roller are fixedly connected to the spline telescopic rod, and annular bumps are fixedly connected to both ends of the surface of the rotating roller.

[0007] Preferably, the balance detection mechanism includes a U-shaped frame which is fixedly connected to the axis center of the annular rotating groove. Two opposite L-shaped pressing rods are rotatably connected to the surface of the support plate. A spring is installed between the two L-shaped pressing rods. Two groups of symmetric L-shaped rods are rotatably connected to the front end of the axis center of the annular rotating groove. Two groups of opposite semi-ratchets are fixedly connected to the surface of the axis center of the annular rotating groove. Pawls are rotatably connected to the rotating joints of the two groups of L-shaped rods through torsion springs. Two groups of opposite slideways are fixedly connected to the surface of the axis center of the annular rotating groove. A U-shaped sliding frame is fixedly connected to one end of the L-shaped rod.

[0008] Preferably, the clutch mechanism includes a rotating rod which is fixedly connected to the side surface of the pulley. A first spring is installed on the surface of the rotating rod. A first gear disk is slidably connected to the surface of the rotating rod. A semi-circular notch rod is rotatably connected to the edge of the first gear disk. A second spring is arranged inside the semi-circular notch rod. The U-shaped sliding frame is slidably connected inside the semi-circular notch rod. Teeth are fixedly connected to the outer edge of the first gear disk. One end of the rotating rod is fixedly connected to a second gear disk through a spring telescopic rod.

[0009] Preferably, the pushing mechanism includes an inclined groove rod which is rotatably connected inside the numerical control machine tool. Slide rails are fixedly connected to the inside of the numerical control machine tool and the upper part directly above the inclined groove rod. A slider is slidably connected inside the slide rails. A telescopic spring is installed between the slider and the inside of the numerical control machine tool. A push rod is fixedly connected to the surface of the slider. A sliding rod is fixedly connected to the lower end of the slider. The bottom of the sliding rod is slidably connected inside the inclined groove rod. A long gear disk is fixedly connected to one end of the inclined groove rod.

[0010] Preferably, the self-locking mechanism includes a special-shaped frame which is fixedly connected to both sides of the slide rail. A clamping block is rotatably connected to the side surface of the first gear disk. A caliper rod is slidably connected inside the special-shaped frame. A third spring is arranged between the caliper rod and the special-shaped frame. An inclined groove clamping rod is fixedly connected to the upper part between the two caliper rods. A pressing rod is fixedly connected to the lower end of the slider.

[0011] In the present invention, when the inclined groove rod rotates, it drives the sliding rod at the lower end of the slider to move. The sliding rod moves along the track inside the inclined groove rod. When the slider moves, it drives the push rod to move towards the steel mesh of the aerated concrete slab, pushing the steel mesh of the aerated concrete slab with a shifted position, preventing the steel mesh of the aerated concrete slab from shifting during transportation, so as to ensure that the steel mesh of the aerated concrete slab is stacked at the same position during the subsequent packing process, saving working time and improving work efficiency at the same time.

[0012] In the present invention, when the inclined groove clamping rod drives the caliper rod to separate from the clamping block, the first gear disk will be pulled back to its original position by the first spring. In this way, when the steel mesh of the aerated concrete slab enters the correct track, the rotating roller will return to its original position through the spring. When the steel mesh of the aerated concrete slab is pushed to the central position, the entire device will also return to its initial state, improving automation and facilitating the next operation, further improving work efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0013] Figure 1 is a three-dimensional external view schematic diagram of the present invention;

[0014] Figure 2 is a schematic diagram of the side sectional structure of the present invention;

[0015] Figure 3 is a schematic diagram of the internal structure of the numerical control machine tool of the present invention;

[0016] Figure 4 is a schematic diagram of the structure of the movable mechanism of the present invention;

[0017] Figure 5 is a schematic diagram of the structure of the plate support mechanism of the present invention;

[0018] Figure 6 is a schematic diagram of the structure of the balance detection mechanism of the present invention;

[0019] Figure 7 is a schematic diagram of the internal structure of the balance detection mechanism of the present invention;

[0020] Figure 8 is for the present invention Figure 7 the enlarged structure schematic diagram of A in;

[0021] Figure 9 is a schematic diagram of the structure of the pushing mechanism and the movable mechanism of the present invention;

[0022] Figure 10 is a schematic diagram of the bottom structure of the clutch mechanism of the present invention;

[0023] Figure 11 is a schematic diagram of the structure of the clutch mechanism of the present invention;

[0024] Figure 12 Schematic diagram of the partial enlarged structure of the clutch mechanism of the present invention;

[0025] Figure 13 Schematic diagram of the pushing mechanism of the present invention;

[0026] Figure 14 Schematic diagram of the self-locking mechanism of the present invention.

[0027] In the figure: 1, numerical control machine tool; 2, driving roller; 3, moving mechanism; 4, plate support mechanism; 5, balance detection mechanism; 6, clutch mechanism; 7, pushing mechanism; 8, self-locking mechanism; 31, main rotating shaft; 32, pulley; 33, transmission belt; 34, universal joint; 35, spline telescopic rod; 41, support plate; 42, annular rotating groove; 43, rotating roller; 44, annular convex block; 51, U-shaped frame; 52, L-shaped extrusion rod; 53, spring; 54, L-shaped rod; 55, semi-ratchet wheel; 56, ratchet pawl; 57, slideway; 58, U-shaped sliding frame; 61, rotating rod; 62, spring 1; 63, gear disk 1; 64, semi-circular notch rod; 65, spring 2; 66, teeth; 67, gear disk 2; 71, inclined groove rod; 72, slide rail; 73, slider; 74, telescopic spring; 75, push rod; 76, long gear disk; 77, sliding rod; 81, special-shaped frame; 82, block; 83, caliper rod; 84, spring 3; 85, inclined groove clamping rod; 86, extrusion rod. Specific implementation mode

[0028] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0029] Please refer to Figures 1 to 14 , the present invention provides a technical solution: a discharging device for forming a steel mesh sheet of aerated concrete plates, including a numerical control machine tool 1, a driving roller 2 is rotatably connected inside the numerical control machine tool 1, a moving mechanism 3 is rotatably connected inside the numerical control machine tool 1, two moving mechanisms 3 are in a group and multiple groups are provided, a plate support mechanism 4 for movably supporting aerated concrete plates is fixedly connected between the moving mechanisms 3, a balance detection mechanism 5 for detecting the angle of the plate is fixedly connected inside the numerical control machine tool 1, a clutch mechanism 6 is rotatably connected inside the numerical control machine tool 1, a pushing mechanism 7 for pushing the plate is fixedly connected inside the inner side of the numerical control machine tool 1, and a self-locking mechanism 8 for controlling the pushing mechanism 7 is arranged between the clutch mechanism 6 and the pushing mechanism 7.

[0030] The movable mechanism 3 includes a main rotating shaft 31, which is rotatably connected inside the numerical control machine tool 1 and is controlled by the numerical control machine tool 1. A pulley 32 is rotatably connected inside the numerical control machine tool 1, and a transmission belt 33 is connected between the pulley 32 and the main rotating shaft 31 for transmission. A universal joint 34 is fixedly connected to the side of the main rotating shaft 31, and a spline telescopic rod 35 is fixedly connected to the side of the universal joint 34. The plate support mechanism 4 includes a support plate 41, which is fixed inside the numerical control machine tool 1. An annular rotating groove 42 is rotatably connected to the upper end of the surface of the support plate 41. A rotating roller 43 is rotatably connected inside the annular rotating groove 42. Both sides of the rotating roller 43 are fixedly connected to the spline telescopic rod 35. Annular bumps 44 are fixedly connected to both ends of the surface of the rotating roller 43. When the rotating roller 43 is offset, the spline telescopic rod 35 and the universal shaft 34 can still keep the rotating roller 43 rotating. When the annular bumps 44 are squeezed, they will shift left and right through the annular rotating groove 42 in the middle of the rotating roller 43. When the rotating roller 43 is offset, it can also be driven by the main rotating shaft 31 through the universal joint 34.

[0031] The balance detection mechanism 5 includes a U-shaped frame 51, which is fixedly connected to the axis of the annular rotating groove 42. Two opposite L-shaped pressing rods 52 are rotatably connected to the surface of the support plate 41. A spring 53 is installed between the two L-shaped pressing rods 52. Two groups of symmetric L-shaped rods 54 are rotatably connected to the front end of the axis of the annular rotating groove 42. The L-shaped rods 54 are arranged oppositely at the front end of the axis of the annular rotating groove 42 and are on the same horizontal line. Two groups of opposite half ratchets 55 are fixedly connected to the surface of the axis of the annular rotating groove 42. Pawls 56 are rotatably connected to the rotating joints of the two groups of L-shaped rods 54 through torsion springs. Two groups of opposite slideways 57 are fixedly connected to the surface of the axis of the annular rotating groove 42. A U-shaped sliding frame 58 is fixedly connected to one end of the L-shaped rod 54. The function of the two groups of pawls 56 arranged oppositely is that when the axis of the annular rotating groove 42 rotates, it will only drive one end of the L-shaped rod 54 to rotate and will not affect the other L-shaped rod 54.

[0032] The clutch mechanism 6 includes a rotating rod 61, which is fixedly connected to the side of the pulley 32. A spring 62 is installed on the surface of the rotating rod 61. A first gear disk 63 is slidably connected to the surface of the rotating rod 61. A semi-circular notch rod 64 is rotatably connected to the edge of the first gear disk 63. A spring 65 is arranged inside the semi-circular notch rod 64. The U-shaped sliding frame 58 is slidably connected inside the semi-circular notch rod 64. Teeth 66 are fixedly connected to the outer edge of the first gear disk 63. One end of the rotating rod 61 is fixedly connected to a second gear disk 67 through a spring telescopic rod. When the L-shaped rod 54 rotates, it drives the U-shaped sliding frame 58 to rotate together. When the U-shaped sliding frame 58 rotates, it will pull the semi-circular notch rod 64. When the semi-circular notch rod 64 is pulled, it will drive the first gear disk 63 rotatably connected to it to move towards the second gear disk 67 on the surface of the rotating rod 61, and at the same time, the first gear disk 63 meshes with the second gear disk 67.

[0033] The pushing mechanism 7 includes an inclined chute rod 71. The inclined chute rod 71 is rotatably connected to the inner side of the numerical control machine tool 1. A slide rail 72 is fixedly connected to the inner side of the numerical control machine tool 1 and the upper end of the inclined chute rod 71. A slider 73 is slidably connected inside the slide rail 72. A telescopic spring 74 is installed between the slider 73 and the inside of the numerical control machine tool 1. A push rod 75 is fixedly connected to the surface of the slider 73. A sliding rod 77 is fixedly connected to the lower end of the slider 73. The bottom of the sliding rod 77 is slidably connected inside the inclined chute rod 71. One end of the inclined chute rod 71 is fixedly connected to a long tooth disc 76.

[0034] The self-locking mechanism 8 includes a special-shaped frame 81. The special-shaped frame 81 is fixedly connected to both sides of the slide rail 72. The special-shaped frame 81 is composed of two frames and a U-shaped frame. Around the periphery of the clutch mechanism 6, a latch 82 is rotatably connected to the side of the first gear disc 63. A caliper rod 83 is slidably connected inside the special-shaped frame 81. A third spring 84 is arranged between the caliper rod 83 and the special-shaped frame 81. An inclined chute latch rod 85 is fixedly connected to the upper ends between the two caliper rods 83. An extrusion rod 86 is fixedly connected to the lower end of the slider 73.

[0035] The usage method and advantages of the present invention: For the discharging device for forming the steel bar mesh of aerated concrete slabs, during use, the working process is as follows:

[0036] As Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 、 Figure 5 、 Figure 6 、 Figure 7 、 Figure 8 、 Figure 9 、 Figure 10 、 Figure 11 、 Figure 12 、 Figure 13 、 Figure 14 shown;

[0037] During use, first place the steel mesh of aerated concrete slabs on the surface of the numerical control machine tool 1 and transport it through the driving roller 2. When the steel mesh of aerated concrete slabs randomly placed on the numerical control machine tool 1 deviates from its trajectory, it will squeeze the annular protrusion 44 on the surface of the roller 43 driven by the main rotating shaft 31. When the annular protrusion 44 is squeezed, it will shift left and right through the annular rotating groove 42 in the middle of the roller 43. When the roller 43 shifts, it can still be driven by the main rotating shaft 31 through the universal joint 34. At the same time, when the annular rotating groove 42 rotates on the surface of the support plate 41, it will drive the U-shaped frame 51 to rotate. When the U-shaped frame 51 rotates, it will squeeze one of the L-shaped extrusion rods 52 and compress the spring 53 at the same time. At the same time, the annular rotating groove 42 will also drive the L-shaped rod 54 opposite to the squeezed U-shaped frame 51 to rotate. When the L-shaped rod 54 rotates, it first catches the pawl 56 through the semi-ratchet 55, and then drives one of the L-shaped rods 54 to rotate. The pawl 56 on the other L-shaped rod 54 will pass through the slideway 57 and thus cannot rotate.

[0038] When the L-shaped rod 54 rotates, it drives the U-shaped sliding frame 58 to rotate together. When the U-shaped sliding frame 58 rotates, it will pull the semi-circular notch rod 64. When the semi-circular notch rod 64 is pulled, it will drive the gear disk one 63 rotationally connected to it to move on the surface of the rotating rod 61 in the direction of the gear disk two 67. At the same time, the gear disk one 63 meshes with the gear disk two 67. When the gear disk two 67 rotates through the main rotating shaft 31, the transmission belt 33 drives the pulley 32 to rotate. When the pulley 32 rotates, it drives the rotating rod 61 to rotate. The rotating rod 61 drives the gear disk two 67 to rotate. The gear disk two 67 drives the gear disk one 63 to rotate. At the same time, the teeth 66 on the edge of the gear disk one 63 mesh with the long gear disk 76. The teeth 66 drive the long gear disk 76 to rotate. The long gear disk 76 drives the inclined groove rod 71 to rotate. When the inclined groove rod 71 rotates, it drives the sliding rod 77 at the lower end of the slider 73 to move. The sliding rod 77 moves along the trajectory in the inclined groove rod 71. At the same time, when the slider 73 moves, it drives the push rod 75 to move in the direction of the steel mesh of aerated concrete slabs, pushing the offset steel mesh of aerated concrete slabs to prevent the position of the steel mesh of aerated concrete slabs from shifting during transportation. This can ensure that the steel mesh of aerated concrete slabs is stacked in the same position during the subsequent packing process, saving working time and improving work efficiency at the same time.

[0039] When the first gear disk 63 moves, it drives the clamping block 82 on the side to move simultaneously. The clamping block 82 slides inside the special-shaped frame 81 and is caught by the caliper rod 83. In this way, when the first gear disk 63 meshes with the second gear disk 67, it will be locked. Until the push rod 75 pushes the steel mesh of the autoclaved aerated concrete slab into the correct track, the slider 73 slides to the top of the slide rail 72. The slider 73 drives the extrusion rod 86 to be pushed into the internal of the inclined groove clamping rod 85, causing the inclined groove clamping rod 85 to slide upward inside the special-shaped frame 81. The inclined groove clamping rod 85 drives the caliper rod 83 to separate from the clamping block 82, and the first gear disk 63 will be pulled back to its original position by the first spring 62. In this way, when the steel mesh of the autoclaved aerated concrete slab enters the correct track, the rotating roller 43 will return to its original position through the spring 53. When the steel mesh of the autoclaved aerated concrete slab is pushed to the central position, the whole device will also return to its initial state.

[0040] The above shows and describes the basic principle, main features and advantages of the present invention. Those skilled in the art of this industry should understand that the present invention is not limited by the above embodiments. The above embodiments and the descriptions in the specification are only preferred examples of the present invention and are not used to limit the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements all fall within the scope of the present invention claimed. The scope of protection claimed by the present invention is defined by the appended claims and their equivalents.

Claims

1. A discharging device for forming a steel mesh of an aerated concrete plate, comprising a numerically controlled machine tool (1), wherein a driving roller (2) is rotatably connected inside the numerically controlled machine tool (1); Features: The CNC machine tool (1) is internally rotatably connected to a movable mechanism (3), two movable mechanisms (3) form a group, and a plurality of groups are provided. A plate support mechanism (4) for movably supporting an aerated concrete plate is fixedly connected between the movable mechanisms (3). A balance detection mechanism (5) capable of detecting the angle of the plate is fixedly connected to the interior of the CNC machine tool (1). A clutch mechanism (6) is internally rotatably connected to the CNC machine tool (1). A push mechanism (7) capable of pushing the plate is fixedly connected to the inner side of the CNC machine tool (1). A self-locking mechanism (8) for controlling the push mechanism (7) is provided between the clutch mechanism (6) and the push mechanism (7).

2. A discharging device for forming aerated concrete plate steel mesh according to claim 1, characterized in that: The movable mechanism (3) comprises a main rotating shaft (31), the main rotating shaft (31) is rotatably connected inside the numerically controlled machine tool (1) and is controlled by the numerically controlled machine tool (1), the internal rotation of the numerically controlled machine tool (1) is connected to a pulley (32), a transmission belt (33) is connected between the pulley (32) and the main rotating shaft (31), a universal joint (34) is fixedly connected to the side of the main rotating shaft (31), and a spline telescopic rod (35) is fixedly connected to the side of the universal joint (34).

3. A discharging device for forming aerated concrete plate steel mesh according to claim 2, characterized in that: The plate support mechanism (4) comprises a support plate (41), the support plate (41) being fixed inside the numerically controlled machine tool (1), the upper end of the surface of the support plate (41) being rotatably connected to an annular groove (42), the interior of the annular groove (42) being rotatably connected to a roller (43), the two sides of the roller (43) being fixedly connected to a spline telescopic rod (35), and the two ends of the surface of the roller (43) being fixedly connected to annular protrusions (44).

4. A discharging device for forming aerated concrete plate steel mesh according to claim 3, characterized in that: The balance detection mechanism (5) comprises a U-shaped frame (51), wherein the U-shaped frame (51) is fixedly connected to the axis of the annular rotating groove (42); two opposite L-shaped extrusion rods (52) are rotatably connected to the surface of the support plate (41); a spring (53) is installed between the two L-shaped extrusion rods (52); two groups of symmetrical L-shaped rods (54) are rotatably connected to the front end of the axis of the annular rotating groove (42); two groups of opposite semi-ratchets (55) are fixedly connected to the axis surface of the annular rotating groove (42); ratchets (56) are rotatably connected to the rotation connection of the two groups of L-shaped rods (54) through torsion springs; two groups of opposite slideways (57) are fixedly connected to the axis surface of the annular rotating groove (42); and one end of the L-shaped rod (54) is fixedly connected to a U-shaped sliding frame (58).

5. A discharging device for forming aerated concrete plate steel mesh according to claim 4, characterized in that: The clutch mechanism (6) comprises a rotating rod (61), the rotating rod (61) is fixedly connected to the side of the pulley (32), a spring 1 (62) is installed on the surface of the rotating rod (61), a toothed disc 1 (63) is slidably connected to the surface of the rotating rod (61), the edge of the toothed disc 1 (63) is rotatably connected to a semicircular notch rod (64), a spring 2 (65) is arranged inside the semicircular notch rod (64), the U-shaped sliding frame (58) is slidably connected inside the semicircular notch rod (64), the outer edge of the toothed disc 1 (63) is fixedly connected to a toothed disc 2 (67) through a spring telescopic rod.

6. A discharging device for forming aerated concrete plate steel mesh according to claim 5, characterized in that: The pushing mechanism (7) comprises an inclined slot rod (71), the inclined slot rod (71) is rotatably connected to the inner side of the numerical control machine tool (1), the inner side of the numerical control machine tool (1) and the upper end of the inclined slot rod (71) are fixedly connected to a slide rail (72), the interior of the slide rail (72) is slidably connected to a slider (73), a telescopic spring (74) is installed between the slider (73) and the interior of the numerical control machine tool (1), a push rod (75) is fixedly connected to the surface of the slider (73), a sliding rod (77) is fixedly connected to the lower end of the slider (73), the bottom of the sliding rod (77) is slidably connected to the interior of the inclined slot rod (71), and one end of the inclined slot rod (71) is fixedly connected to a long toothed disc (76).

7. A discharging device for forming steel mesh of aerated concrete plate according to claim 6, characterized in that: The self-locking mechanism (8) comprises a special-shaped frame (81), the special-shaped frame (81) is fixedly connected to both sides of the slide rail (72), and a clamping block (82) is rotatably connected to the side of the toothed disc (63).

8. A discharging device for forming aerated concrete plate steel mesh according to claim 7, characterized in that: A caliper rod (83) is slidably connected inside the special-shaped frame (81), a spring three (84) is arranged between the caliper rod (83) and the special-shaped frame (81), an inclined groove clamping rod (85) is fixedly connected to the upper end between the two caliper rods (83), and an extrusion rod (86) is fixedly connected to the lower end of the slider (73).

Citation Information

Patent Citations

  • Discharging device for forming reinforcing mesh of aerated concrete plate

    CN212953262U